HIF-1α and HIF-2α induced angiogenesis in gastrointestinal vascular malformation and reversed by thalidomide

被引:0
|
作者
Nan Feng
Haiying Chen
Sengwang Fu
Zhaolian Bian
Xiaolu Lin
Li Yang
Yunjie Gao
Jingyuan Fang
Zhizheng Ge
机构
[1] Key Laboratory of Gastroenterology & Hepatology,Division of Gastroenterology & Hepatology
[2] Ministry of Health,Department of gastroenterology and hepatology
[3] Ren Ji Hospital,undefined
[4] School of Medicine,undefined
[5] Shanghai Jiao Tong University,undefined
[6] Shanghai Institute of Digestive Diseases,undefined
[7] Nantong Institute of liver diease,undefined
[8] Nantong Third people’s Hospital,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Thalidomide is used in clinical practice to treat gastrointestinal vascular malformation (GIVM), but the pathogenesis of GIVM is not clear. Hypoxia inducible factor 1 alpha (HIF-1α) and 2 alpha (HIF-2α/EPAS1) are in the same family and act as master regulators of the adaptive response to hypoxia. HIF-1α and HIF-2α are up-regulated in vascular malformations in intestinal tissues from GIVM patients, but not in adjacent normal vessels. Therefore, we investigated the role of HIF-1α and HIF-2α during angiogenesis and the mechanism of thalidomide action. In vitro experiments confirmed that vascular endothelial growth factor (VEGF) was a direct target of HIF-2α and that HIF-1α and HIF-2α regulated NOTCH1, Ang2 and DLL4, which enhanced vessel-forming of endothelial cells. Thalidomide down-regulated the expression of HIF-1α and HIF-2α and inhibited angiogenesis. In vivo zebrafish experiments suggested that HIF-2α overexpression was associated with abnormal subintestinal vascular (SIV) sprouting, which was reversed by thalidomide. This result indicated that thalidomide regulated angiogenesis via the inhibition of HIF-1α and HIF-2α expression, which further regulated downstream factors, including VEGF, NOTCH1, DLL4 and Ang2. The abnormally high expression of HIF-1α and HIF-2α may contribute to GIVM.
引用
收藏
相关论文
共 50 条
  • [31] Differential Regulatory Functions of HIF-1α and HIF-2α During Angiogenesis of Human Microvascular Endothelial Cells (HMECs)
    Hahne, Martin
    Luetkecosmann, Steffi
    Cam Loan Tran
    Strehl, Cindy
    Fangradt, Monique
    Jakstadt, Manuela
    Duda, Georg
    Hoff, Paula
    Gaber, Timo
    Burmester, Gerd-Ruediger
    Buttgereit, Frank
    ARTHRITIS AND RHEUMATISM, 2011, 63 (10): : S10 - S11
  • [32] Modulation of hypoxia inducible transcription factors hif-1α and hif-2α in a rat glioma model of tumor angiogenesis
    Acker, T
    Diem, T
    Flamme, I
    Plate, KH
    ACTA NEUROPATHOLOGICA, 2001, 102 (05) : 515 - 515
  • [33] Regulation of glucose metabolism-related genes and VEGF by HIF-1α and HIF-1β, but not HIF-2α, in gastric cancer
    Song, In-Sung
    Wang, Ai-Guo
    Yoon, Sun Young
    Kim, Jeong-Min
    Kim, Joo Heon
    Lee, Dong-Seok
    Kim, Nam-Soon
    EXPERIMENTAL AND MOLECULAR MEDICINE, 2009, 41 (01): : 51 - 58
  • [34] Regulation of glucose metabolism-related genes and VEGF by HIF-1α and HIF-1β, but not HIF-2α, in gastric cancer
    In-Sung Song
    Ai-Guo Wang
    Sun Young Yoon
    Jeong-Min Kim
    Joo Heon Kim
    Dong-Seok Lee
    Nam-Soon Kim
    Experimental & Molecular Medicine, 2009, 41 : 51 - 58
  • [35] Recruitment of HIF-1α and HIF-2α to common target genes is differentially regulated in neuroblastoma:: HIF-2α promotes an aggressive phenotype
    Holmquist-Mengelbier, Linda
    Fredlund, Erik
    Lofstedt, Tobias
    Noguera, Rosa
    Navarro, Samuel
    Nilsson, Helen
    Pietras, Alexander
    Vallon-Christersson, Johan
    Borg, Ake
    Gradin, Katarina
    Poellinger, Lorenz
    Pahlman, Sven
    CANCER CELL, 2006, 10 (05) : 413 - 423
  • [36] Correlation of HIF-1α/HIF-2α expression with FDG uptake in lung adenocarcinoma
    Higashi, Kotaro
    Yamagishi, Toshiaki
    Ueda, Yoshimichi
    Ishigaki, Yasuhito
    Shimasaki, Miyako
    Nakamura, Yuka
    Oguchi, Manabu
    Takegami, Tsutomu
    Sagawa, Motoyasu
    Tonami, Hisao
    ANNALS OF NUCLEAR MEDICINE, 2016, 30 (10) : 708 - 715
  • [37] Investigating the real role of HIF-1 and HIF-2 in iron recycling by macrophages
    Mathieu, Jacques R. R.
    Heinis, Mylene
    Zumerle, Sara
    Delga, Stephanie
    Le Bon, Agnes
    Peyssonnaux, Carole
    HAEMATOLOGICA, 2014, 99 (07)
  • [38] Implication of HIF-1α but not HIF-2α in the hypoxic response of human hematopoietic progenitors
    Zhang, YY
    Foudi, A
    Berthebaud, M
    Buet, D
    Jarrier, P
    Vainchenker, W
    Louache, F
    BLOOD, 2004, 104 (11) : 125B - 125B
  • [39] Endothelial Cell HIF-1α and HIF-2α Differentially Regulate Metastatic Success
    Branco-Price, Cristina
    Zhang, Na
    Schnelle, Moritz
    Evans, Colin
    Katschinski, Doerthe M.
    Liao, Debbie
    Ellies, Lesley
    Johnson, Randall S.
    CANCER CELL, 2012, 21 (01) : 52 - 65
  • [40] Opposing Roles for HIF-1α and HIF-2α in Tumor-infiltrating Macrophages
    Roda, Julie M.
    Eubank, Timothy D.
    Marsh, Clay B.
    JOURNAL OF IMMUNOTHERAPY, 2009, 32 (09) : 991 - 992